Electroplating sorting device for large and high MLCC (multilayer ceramic capacitor) products

By designing an electroplating sorting device for MLCC high-growth products, and utilizing an inclined sorting platform and telescopic connecting components, the problem of impact damage and ceramic damage caused by the high drop height during the separation process of MLCC high-growth products after electroplating was solved, achieving efficient and safe material separation.

CN223717715UActive Publication Date: 2025-12-26GUANGDONG VIIYONG ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202423253905.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-28
Publication Date
2025-12-26
Estimated Expiration
2034-12-28

AI Technical Summary

Technical Problem

MLCC high-growth products are prone to damage and ceramic breakage due to the high drop height during the separation process after electroplating, which is difficult to avoid effectively with existing technology.

Method used

Design a sorting device for electroplating MLCC high-performance products. Utilize an inclined sorting platform and telescopic connecting components to separate materials and co-plating products through vibration. The telescopic connecting components can also be used to adjust the tilt angle of the material collection box to reduce the falling height of the materials and prevent damage.

Benefits of technology

It effectively reduces material damage and ceramic breakage during the separation process, improving separation efficiency and product integrity.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to an MLCC large and high product electroplating sorting device which comprises an inclined sorting platform, a mounting frame, a material collecting box, a telescopic connecting assembly and an accompanying plating product collecting box, and the inclined sorting platform enables square materials to move upwards and enables spherical accompanying plating products to move downwards through vibration; the material collecting box is arranged below the upper discharging opening of the inclined sorting platform, and the upper end of the material collecting box is rotationally connected with the mounting frame; one end of the telescopic connecting assembly is connected to the mounting frame, and the other end is connected with the material collecting box; the weight of the material collecting box is increased to drive the telescopic connecting assembly to stretch or compress, so that the inclination angle of the material collecting box in the vertical direction is reduced. According to the technical scheme, the materials are always kept to fall near the top of the material collecting box, and collision damage or porcelain damage caused by the large falling height is avoided.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of MLCC manufacturing, and particularly relates to a MLCC large-height product electroplating sorting device. BACKGROUND

[0002] MLCC (Multi-layers Ceramic Capacitor), namely a multi-layer ceramic capacitor, is also called a laminated capacitor, a stacked capacitor and the like, and is the most widely used capacitor. The MLCC is formed by stacking ceramic dielectric thin film sheets printed with electrodes (internal electrodes) in an interleaved manner, sintering the ceramic blocks, and sealing metal layers (external electrodes) on both ends of the ceramic blocks.

[0003] When the MLCC is prepared, a process of batching, casting, printing, layering, laminating, cutting, degassing, sintering, chamfering, end sealing, end burning and electroplating is generally performed. When the electroplating process is performed, a steel ball + product mode is generally used for electroplating, wherein the steel ball is an electroplating medium, namely an accompanying plated product, and the purpose of adding the steel ball is to expand the cathode area and enhance the conductivity. After the electroplating is completed, the material and the steel ball need to be separated.

[0004] The traditional method is to utilize the difference in shape between the steel ball (spherical) and the product (cuboid), and the difference in friction force on the inclined surface due to the difference in contact area. When the inclined surface is vibrated up and down, a friction force along the slope is generated for the steel ball and the product. The cuboid MLCC product moves upward due to the large friction force and the large combined force of vibration and friction, and the spherical steel ball moves downward due to the small friction force and the small combined force of vibration and friction, so that the product and the steel ball (medium) are separated. The separated product moves upward and falls into a product collection box.

[0005] The MLCC large-height product is prone to porcelain damage due to the high capacity and thin internal dielectric layer. In the initial stage after the product is separated from the steel ball and enters the product collection box, there is no product in the product collection box, and the product falls from a high height (for example, about 15-20 cm). The high falling height easily causes the product to be damaged and porcelain damaged. INVENTION CONTENTS

[0006] Therefore, it is necessary to provide a MLCC large-height product electroplating sorting device which can solve the above technical problems.

[0007] The above purpose of the present application is achieved by the following technical scheme:

[0008] The present application provides a MLCC large-height product electroplating sorting device, which comprises:

[0009] An inclined sorting platform, which moves square materials upward and moves spherical inclusions downward by vibration;

[0010] A mounting frame;

[0011] A material collecting box, which is arranged below an upper discharge port of the inclined sorting platform, and whose upper end is rotationally connected with the mounting frame;

[0012] A telescopic connecting assembly, one end of which is connected with the mounting frame, and the other end of which is connected with the material collecting box; the weight increase of the material collecting box drives the telescopic connecting assembly to stretch or compress, so that the inclination angle of the material collecting box in the vertical direction is reduced;

[0013] An inclusion collecting box, which is arranged below a lower discharge port of the lower end of the inclined sorting platform.

[0014] In one embodiment, the telescopic connecting assembly includes a mounting seat, a pushing part, a pushing rod and a connecting seat;

[0015] The mounting seat is mounted on the mounting frame, the pushing part is rotationally mounted on the mounting seat, one end of the pushing rod is connected with the pushing part, and the pushing part drives the pushing rod to move linearly relative to the pushing part by pressure;

[0016] The connecting seat is mounted on the material collecting box, and the other end of the pushing rod is rotationally connected with the connecting seat; the weight increase of the material collecting box drives the pushing rod to move linearly by overcoming the pressure.

[0017] In one embodiment, the pushing part is a hydraulic cylinder, and the pushing rod is a hydraulic rod.

[0018] In one embodiment, the material collecting box includes a downward lower side wall, and the connecting seat is mounted on the lower side wall.

[0019] In one embodiment, the material collecting box includes a left side wall and a right side wall;

[0020] The connecting seat is mounted on the left side wall or the right side wall, or

[0021] The telescopic connecting assembly includes two, and the connecting seats of the two telescopic connecting assemblies are respectively mounted on the left side wall and the right side wall.

[0022] In one embodiment, the mounting frame is arranged below the inclined sorting platform.

[0023] In one embodiment, a material bag is sleeved in the material collecting box.

[0024] In one of the embodiments, the material collecting box is in a cubic shape, with an upward opening, which is arranged below the upper discharge port of the inclined sorting platform.

[0025] In one of the embodiments, a first buffer platform is arranged above the inclined sorting platform, and the first buffer platform is arranged in an elevated manner.

[0026] The first buffer platform is arranged in parallel with the table top of the inclined sorting platform, and the projections of the upper and lower ends of the first buffer platform in the vertical direction are both located on the inclined sorting platform.

[0027] In one of the embodiments, first protective side plates are arranged on the left and right sides of the inclined sorting platform respectively, and the height of the first buffer platform is lower than that of the first protective side plates.

[0028] The present application has the following beneficial effects:

[0029] In the embodiments of the present application, the mounting frame and the telescopic connecting assembly are arranged, the telescopic connecting assembly drives the material collecting box to rotate around the mounting frame, so that the material falling from the inclined sorting platform does not directly fall on the bottom of the material collecting box, but falls on the side wall below the material collecting box, so that the falling height of the material is low, effectively reducing the bruising caused by the falling of the material. As the material in the material collecting box slowly increases, the material slowly slides to the bottom of the material collecting box due to its own gravity, the weight of the material collecting box increases to drive the telescopic connecting assembly to stretch or compress, so that the inclination angle of the material collecting box in the vertical direction slowly decreases, the material slowly fills the bottom of the material collecting box, and the subsequent material always remains near the top of the material collecting box, avoiding bruising or chipping due to the large falling height. BRIEF DESCRIPTION OF DRAWINGS

[0030] Figure 1 Structure diagram of the MLCC large-height product electroplating sorting device in an exemplary embodiment;

[0031] Figure 2 Structure diagram of the material dispersing platform in an exemplary embodiment;

[0032] Figure 3 Structure diagram of the material dispersing platform in an exemplary embodiment;

[0033] Figure 4 Structure diagram of the inclined sorting platform in an exemplary embodiment;

[0034] Figure 5 Structure diagram of the inclined sorting platform in an exemplary embodiment;

[0035] Figure 6This is a schematic diagram of the structure of a telescopic connection component in an exemplary embodiment.

[0036] Explanation of icon numbers:

[0037] 100. Electroplating and sorting device for MLCC high-performance products; 10. Feed hopper; 20. Material dispersion platform; 21. Dispersion outlet; 22. Guide trough; 23. First vibrating component; 24. Second protective side plate; 30. Inclined sorting platform; 31. Upper outlet; 32. Lower outlet; 33. First buffer platform; 34. First protective side plate; 35. Second vibrating component; 40. Material collection box; 41. Lower side wall; 42. Right side wall; 50. Accompanying plating product collection box; 60. Mounting frame; 70. Telescopic connection assembly; 71. Mounting base; 72. Hydraulic cylinder; 73. Hydraulic rod; 74. Connecting seat. Detailed Implementation

[0038] To make the above-mentioned objectives, features, and advantages of this application more apparent and understandable, a detailed description of specific embodiments of this application is provided below. Many specific details are set forth in the following description to provide a thorough understanding of this application. However, this application can be implemented in many other ways different from those described herein, and those skilled in the art can make similar modifications without departing from the spirit of this application. Therefore, this application is not limited to the specific embodiments disclosed below.

[0039] Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Thus, a feature defined as "first" or "second" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified.

[0040] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this application belongs. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0041] This application provides an electroplating sorting device for MLCC high-performance products, used to separate the electroplated material from the co-plated products.

[0042] like Figures 1-2 As shown, in one embodiment, the MLCC high-performance product electroplating sorting device 100 includes a feeding bin 10, a material dispersing platform 20, an inclined sorting platform 30, a material collection box 40, and a plating-related product collection box 50.

[0043] The feed hopper 10 is used to provide square materials and spherical plating products after the electroplating process is completed. The bottom of the feed hopper 10 forms an outlet from which the materials and plating products fall downwards. In this embodiment, the materials can be MLCC products or other capacitor products, while the plating products can be steel balls or spherical objects made of other metals or conductive materials.

[0044] The material dispersion platform 20 is inclinedly positioned below the feed hopper 10. The material dispersion platform 20 disperses the material and plating spurs before transferring them to the inclined sorting platform 30 for separation. Specifically, the lowest point of the material dispersion platform 20 is the dispersion outlet 21. The material dispersion platform 20 is equipped with multiple guide grooves 22. The working principle of the material dispersion platform 20 is to use up-and-down vibration to move the material and plating spurs along the guide grooves 22 towards the dispersion outlet 21.

[0045] In this embodiment, the material dispersion platform 20 vibrates up and down on its inclined surface, causing the material and plating components on the inclined surface to disperse under the guidance of the guide groove 22 and move downward along its inclined surface, thus falling relatively evenly from the dispersion outlet 21. The inclination and vibration amplitude of the material dispersion platform 20 can be set so that the resultant force of the upward vibration and friction on the material on the material dispersion platform 20 is less than its own weight, thereby causing the material to move downward.

[0046] Specifically, in order to guide the material and the plating spool to the dispersion outlet 21, the extension direction of the guide groove 22 is the same as the tilt direction of the material dispersion platform 20, and it extends from the high point of the material dispersion platform 20 to the low point, for example, to the dispersion outlet 21.

[0047] like Figures 1-3 As shown, in this embodiment, one end of the guide trough 22 extends to the dispersion outlet 21, and the other end of the guide trough 22 may extend to the material dispersion platform 20 located below the outlet of the feed hopper 10. After the material and plating accompaniments fall below the outlet of the feed hopper 10, the accumulated material and plating accompaniments are dispersed to different guide troughs 22 under the action of vibration, and move towards the dispersion outlet 21 along the different guide troughs 22. In other examples, the guide trough 22 may also be located between the material dispersion platform 20 located below the outlet of the feed hopper 10 and the dispersion outlet 21. That is, the material dispersion platform 20 located below the outlet of the feed hopper 10 is set as a plane, and the accumulated material and plating accompaniments are dispersed to the surrounding area under the action of vibration, and then move to different guide troughs 22 during the downward movement.

[0048] Preferably, the side wall height of the guide groove 22 is greater than the height of the material and the accompanying plated product, and the width of the guide groove 22 is also greater than the width of the material and the accompanying plated product. Of course, the side wall height of the guide groove 22 cannot be too high, otherwise it cannot play a dispersing role.

[0049] The inclined sorting platform 30 is arranged obliquely below the dispersion discharge port 21, and the inclined sorting platform 30 moves the material upward and the accompanying plated product downward through up-and-down vibration.

[0050] In the embodiment, unlike the material dispersion platform 20, the inclination and vibration amplitude of the inclined sorting platform 30 can be set so that the resultant force of the vibration upward and the friction force on the material on the inclined sorting platform 30 is greater than the gravity of the material, so that the material moves upward, and the spherical accompanying plated product moves downward due to the small friction force.

[0051] The material collection box 40 is arranged below the upper discharge port 31 at the upper end of the inclined sorting platform 30, and is used to collect the falling material; and the accompanying plated product collection box 50 is arranged below the lower discharge port 32 at the lower end of the inclined sorting platform 30, and is used to collect the falling accompanying plated product.

[0052] In the embodiment, the material dispersion platform is arranged above the inclined sorting platform, and a plurality of guide grooves extending from the top to the dispersion discharge port are arranged on the material dispersion platform, so that the material and the accompanying plated product falling from the feeding bin and accumulated on the material dispersion platform can be dispersed into the guide grooves and then move to the dispersion discharge port along different guide grooves, so that the material and the accompanying plated product falling on the inclined sorting platform are more dispersed, and the separation efficiency of the material and the accompanying plated product on the inclined sorting platform is improved.

[0053] In Figures 1 to 3 the example, the plurality of guide grooves 22 are arranged in parallel along the inclination direction of the material dispersion platform 20. Since the number of the material and the accompanying plated product falling into the central guide groove is greater than the number of the material and the accompanying plated product falling into the two side guide grooves, in other examples, one end of the guide groove 22 extends to the dispersion discharge port 21, and the other end of the guide groove 22 extends to below the discharge port of the feeding bin 10, and the opening width of the other end of the guide groove 22 gradually increases from the center to the two sides.

[0054] For the convenience of installation of the equipment, as shown in Figure 1 and Figure 2 , the inclination directions of the material dispersion platform 20 and the inclined sorting platform 30 are arranged intersectingly, so that the support mechanisms at the bottoms of the two platforms can be staggered with each other and do not interfere with each other.

[0055] In the condition that the material dispersion platform 20 and the inclined sorting platform 30 are arranged in cross, in order to make the falling height difference of the dispersion discharge port 21 of the material dispersion platform 20 not too large when falling at different angles, preferably, as shown in Figure 1 and Figure 2 , the extension direction of the dispersion discharge port 21 is projected on the inclined sorting platform 30 as a horizontal line, so that the height of the corresponding inclined sorting platform 30 when falling at different angles from the dispersion discharge port is the same.

[0056] In order to avoid the collision injury of the material and the accompanying plated product when falling due to large height difference, as shown in Figure 1 , Figure 2 , Figure 4 and Figure 5 , the upper part of the inclined sorting platform 30 is provided with a first buffer platform 33, and the first buffer platform 33 is arranged in the air on the inclined sorting platform 30. The first buffer platform 33 is arranged below the dispersion discharge port 21, the first buffer platform 33 is arranged in parallel with the table surface of the inclined sorting platform 30, and the projections of the upper and lower ends of the first buffer platform 33 in the vertical direction are both located on the inclined sorting platform 30.

[0057] In the embodiment, the material and the accompanying plated product first fall to the first buffer platform 33. Since the first buffer platform 33 is arranged in parallel with the table surface of the inclined sorting platform 30, the material and the accompanying plated product on the surface of the first buffer platform 33 are driven by the up-and-down vibration of the inclined sorting platform 30 to move upward and then fall from the upper end of the first buffer platform to the table surface of the inclined sorting platform 30, and the accompanying plated product also moves downward and then falls from the lower end of the first buffer platform to the table surface of the inclined sorting platform 30. Since the first buffer platform 33 is arranged in the air, the accompanying plated product falling from the upper end of the first buffer platform 33 can move downward from the table surface of the inclined sorting platform 30 at the bottom of the first buffer platform 33, and the material falling from the lower end of the first buffer platform 33 can move upward from the table surface of the inclined sorting platform 30 at the bottom of the first buffer platform 33.

[0058] In other embodiments, the upper part of the inclined sorting platform is also provided with a second buffer platform and a third buffer platform, and the second buffer platform and the third buffer platform are arranged in the air. The second buffer platform is arranged between the lower end of the first buffer platform and the inclined sorting platform, and the third buffer platform is arranged between the upper end of the first buffer platform and the inclined sorting platform. The second buffer platform and the third buffer platform are arranged in parallel with the table surface of the inclined sorting platform, and the projections of the lower end of the second buffer platform and the upper end of the third buffer platform in the vertical direction are both located on the inclined sorting platform.

[0059] As shown in Figure 4As shown, the inclined sorting platform 30 is provided with first protective side plates 34 on the left and right sides respectively. The height of the first buffer platform 33 is lower than that of the first protective side plates 34, so that the materials and plating products will not fall from the sides.

[0060] like Figure 3 As shown, the material distribution platform 20 is provided with second protective side plates 24 at its left and right ends and at its top, so that the material and the plating products will not fall from the sides and top.

[0061] In one embodiment, such as Figure 1 , Figure 3 and Figure 4 As shown, it also includes a first vibrating element 23 and a second vibrating element 35; the first vibrating element 23 is connected to the material dispersing platform 20 and is used to drive the material dispersing platform 20 to vibrate up and down; the second vibrating element 35 is connected to the inclined sorting platform 30 and is used to drive the inclined sorting platform 30 to vibrate up and down. Preferably, the first vibrating element 23 and the second vibrating element 35 are both vibration motors, with the first vibrating element 23 disposed at the bottom of the material dispersing platform 20 and the second vibrating element 35 disposed at the bottom of the inclined sorting platform 30.

[0062] In this embodiment, in order to achieve different effects between the material dispersing platform 20 and the inclined sorting platform 30, the inclination angle of the inclined sorting platform 30 is greater than that of the material dispersing platform 20, and the vibration amplitude output by the second vibrating element 35 is greater than that output by the first vibrating element 23.

[0063] To address the technical problem of materials easily getting injured when falling into the material collection box, such as... Figure 1 , Figure 2 and Figure 6 As shown, in one embodiment, the MLCC high-performance product electroplating sorting device 100 further includes a mounting frame 60 and a telescopic connection assembly 70. The upper end of the material collection box 40 is rotatably connected to the mounting frame 60. Specifically, the material collection box 40 can be rotatably connected to the mounting frame 60 via a rotating connector, such as a hinge, or via a telescopic connection assembly 70. Figure 6 As shown, a non-fixed rotating connection is formed through abutment contact. One end of the telescopic connection assembly 70 is connected to the mounting bracket 60, and the other end is connected to the material collection box 40. The increase in weight of the material collection box 40 causes the telescopic connection assembly 70 to stretch or compress, thereby reducing the tilt angle of the material collection box 40 in the vertical direction.

[0064] In this embodiment, the material collection box 40 is cubic in shape and has an upward opening, which is located below the upper discharge port 31 of the inclined sorting platform 30.

[0065] In the embodiment, when the material collecting box 40 is in the initial state with no or less material inside, the lower end of the material collecting box 40 is lifted up or pulled up by the telescopic connecting assembly 70, resulting in a large inclination angle of the material collecting box 40 in the vertical direction, i.e. the material falling from the inclined sorting platform 30 does not directly fall on the bottom of the material collecting box 40, but on the sidewall below the material collecting box 40, so that the falling height of the material is low, effectively reducing the bruising caused by the falling of the material. As the material inside the material collecting box 40 gradually increases, the material slowly slides to the bottom of the material collecting box 40 due to its own gravity, and the increased weight of the material collecting box 40 drives the telescopic connecting assembly 70 to stretch or compress, so that the inclination angle of the material collecting box 40 in the vertical direction gradually decreases, so that the material gradually fills the bottom of the material collecting box, so that the subsequent material always falls near the top of the material collecting box 40, avoiding bruising or chipping caused by a large falling height.

[0066] The telescopic connecting assembly 70 can be a gas pressure rod (gas spring), spring, gravity telescopic rod, etc. The telescopic connecting assembly 70 can be connected to the material collecting box 40 from above the material collecting box 40, so that the increased weight of the material collecting box 40 drives the telescopic connecting assembly 70 to stretch, so that the inclination angle of the material collecting box 40 in the vertical direction decreases. Figure 1 And Figure 4 In the example, the mounting frame 60 is arranged below the inclined sorting platform 30, and the telescopic connecting assembly 70 is connected to the material collecting box 40 from below the material collecting box 40, so that the increased weight of the material collecting box 40 drives the telescopic connecting assembly 70 to compress, so that the inclination angle of the material collecting box 40 in the vertical direction decreases.

[0067] Specifically, the telescopic connecting assembly 70 can be connected to the middle or bottom of the material collecting box 40, or a position between the middle and the bottom. The closer the connection position to the bottom of the material collecting box 40, the larger the rotation angle of the material collecting box 40.

[0068] In a specific example, as shown in Figure 6 The telescopic connecting assembly 70 includes a mounting seat 71, a pushing part, a pushing rod and a connecting seat 74. The mounting seat 71 is mounted on the mounting frame 60, the pushing part is rotatably mounted on the mounting seat 71, one end of the pushing rod is connected to the pushing part, and the pushing part moves linearly relative to the pushing part by pressure. The connecting seat 74 is mounted on the material collecting box 40, and the other end of the pushing rod is rotatably connected to the connecting seat 74. The increased weight of the material collecting box 40 drives the pushing rod to move linearly against the pressure.

[0069] As shown in Figure 6 Preferably, the pushing part is a hydraulic cylinder 72, and the pushing rod is a hydraulic rod 73. In other examples, the pushing part and the pushing rod can also be electric or pneumatic mechanisms with similar principles.

[0070] As shown in Figure 1 and Figure 4 The material collecting box 40 comprises a downward lower side wall 41, and the connecting seat 74 is mounted on the lower side wall 41. In other examples, the material collecting box 40 further comprises left and right side walls 42, and the connecting seat 74 can be mounted on the left or right side wall 42, or more preferably, the telescopic connecting assembly 70 comprises two connecting seats 74 mounted on the left and right side walls 42 respectively.

[0071] Preferably, in an embodiment, a material bag (not shown) is sleeved in the material collecting box 40. In this embodiment, a material bag is sleeved in the material collecting box 40, and when the material is full, the material bag is directly taken away, and a new material bag is placed to continue collecting, which can effectively prevent the material from remaining in the material collecting box, and can reduce the operation of re-transferring the material, improve the transferring efficiency, and reduce the porcelain damage generated in the transferring process.

[0072] The technical features of the above-mentioned embodiments can be combined arbitrarily, and for the sake of brevity, all possible combinations of the technical features in the above-mentioned embodiments are not described, but as long as the combination of the technical features does not exist contradictory, it should be considered as the scope of the present application.

[0073] The above-mentioned embodiments only express several embodiments of the present application, and the description is more specific and detailed, but it should not be understood as a limitation on the scope of the utility model patent. It should be pointed out that for ordinary skilled in the art, without departing from the concept of the present application, a number of variations and improvements can be made, which belong to the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the appended claims, and the description can be used to explain the content of the claims.

Claims

1. An MLCC large height product plating sorting device, characterized by, The utility model relates to a kind of MLCC large high product electroplating sorting devices, including: Inclined sorting platform, the square material is moved upward by vibration, and the ball-shaped accompanying plated product is moved downward; Mounting frame; Material collection box, the upper end of the material collection box is rotatably connected with the mounting frame, is arranged below the upper discharge port of the inclined sorting platform; Telescopic connecting assembly, one end of the telescopic connecting assembly is connected with the mounting frame, and the other end of the telescopic connecting assembly is connected with the material collection box;The weight of the material collection box is increased to drive the telescopic connecting assembly to stretch or compress, so that the inclination angle of the material collection box in vertical direction is reduced; Accompanying plated product collection box, arranged below the lower discharge port of the lower end of the inclined sorting platform.

2. The MLCC large high product electroplating sorting device according to claim 1, wherein: The telescopic connecting assembly comprises a mounting seat, a pushing part, a pushing rod and a connecting seat; The mounting seat is mounted on the mounting frame, the pushing part is rotatably mounted on the mounting seat, one end of the pushing rod is connected with the pushing part, and the pushing part moves linearly relative to the pushing part by pressure; The connecting seat is mounted on the material collection box, the other end of the pushing rod is rotatably connected with the connecting seat, and the weight of the material collection box drives the pushing rod to move linearly against the pressure.

3. The MLCC large high product electroplating sorting device according to claim 2, wherein: The pushing part is a hydraulic cylinder, and the pushing rod is a hydraulic rod.

4. The MLCC large high product electroplating sorting device according to claim 2 or 3, wherein: The material collection box comprises a downward lower side wall, and the connecting seat is mounted on the lower side wall.

5. The MLCC large high product electroplating sorting device according to claim 2 or 3, wherein: The material collection box comprises a left side wall and a right side wall; The connecting seat is mounted on the left side wall or the right side wall, or The telescopic connecting assembly comprises two, and the connecting seats of the two telescopic connecting assemblies are mounted on the left side wall and the right side wall respectively.

6. The MLCC large high product electroplating sorting device according to claim 2, wherein: The mounting frame is arranged below the inclined sorting platform.

7. The MLCC large high product electroplating sorting device according to claim 1, wherein: A material bag is sleeved in the material collection box.

8. The MLCC large high product electroplating sorting device according to claim 1, wherein: The material collection box is in the shape of a cube, has an upward opening, and the opening is arranged below the upper discharge port of the inclined sorting platform.

9. The MLCC large high product electroplating sorting device according to claim 1, wherein: A first buffer platform is arranged above the inclined sorting platform, and the first buffer platform is arranged in the air; The first buffer platform is arranged in parallel with the table top of the inclined sorting platform, and the projections of the upper and lower ends of the first buffer platform in the vertical direction are both located on the inclined sorting platform.

10. The MLCC large high product electroplating sorting device according to claim 9, wherein: The left and right sides of the inclined sorting platform are respectively provided with first protective side plates, and the height of the first buffer platform is lower than that of the first protective side plates.